Molecular adsorption induces normal stresses at frictional interfaces of hydrogels

Fuente: arXiv
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Autores principales: Ciapa, Lola, Tran, Yvette, Frétigny, Christian, Chateauminois, Antoine, Verneuil, Emilie
Formato: Preprint
Publicado: 2024
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author Ciapa, Lola
Tran, Yvette
Frétigny, Christian
Chateauminois, Antoine
Verneuil, Emilie
author_facet Ciapa, Lola
Tran, Yvette
Frétigny, Christian
Chateauminois, Antoine
Verneuil, Emilie
contents Friction experiments were conducted on hydrogel thin films sliding against a rigid sphere in a low velocity regime where molecular adsorption at the sliding interface sets the friction force, through a dissipative adsorption-stretching-desorption mechanism initially postulated by Schallamach. By carefully imaging the contact from the initial indentation step of the sphere into the hydrogel to steady state sliding, we evidence for the first time that this very same adsorption mechanism also results in a normal force pulling the sphere further into the hydrogel. Observations of this tangential-normal coupling is made on a variety of chemically modified silica spheres, over 3 decades in velocity and at varied normal load, thereby demonstrating its robustness. Quantitative measurements of the extra normal force and of the friction-velocity relationship versus normal load are well rationalized within a theoretical model based on the thermal actuation of molecular bonds. To do so, we account for the finite non-zero thickness of the sliding interface at which molecular adsorption and stretching events produce an out-of-plane force responsible for both friction and normal pull-in.
format Preprint
id arxiv_https___arxiv_org_abs_2412_06363
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Molecular adsorption induces normal stresses at frictional interfaces of hydrogels
Ciapa, Lola
Tran, Yvette
Frétigny, Christian
Chateauminois, Antoine
Verneuil, Emilie
Soft Condensed Matter
Friction experiments were conducted on hydrogel thin films sliding against a rigid sphere in a low velocity regime where molecular adsorption at the sliding interface sets the friction force, through a dissipative adsorption-stretching-desorption mechanism initially postulated by Schallamach. By carefully imaging the contact from the initial indentation step of the sphere into the hydrogel to steady state sliding, we evidence for the first time that this very same adsorption mechanism also results in a normal force pulling the sphere further into the hydrogel. Observations of this tangential-normal coupling is made on a variety of chemically modified silica spheres, over 3 decades in velocity and at varied normal load, thereby demonstrating its robustness. Quantitative measurements of the extra normal force and of the friction-velocity relationship versus normal load are well rationalized within a theoretical model based on the thermal actuation of molecular bonds. To do so, we account for the finite non-zero thickness of the sliding interface at which molecular adsorption and stretching events produce an out-of-plane force responsible for both friction and normal pull-in.
title Molecular adsorption induces normal stresses at frictional interfaces of hydrogels
topic Soft Condensed Matter
url https://arxiv.org/abs/2412.06363